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Modeling soil moisture and oxygen effects on soil biogeochemical cycles including dissimilatory nitrate reduction to ammonium (DNRA)

Publication ,  Journal Article
Rubol, S; Manzoni, S; Bellin, A; Porporato, A
Published in: Advances in Water Resources
October 1, 2013

The emission of greenhouse gasses (GHG) from soils is controlled by biogeochemical reactions and the physical constraints on gas diffusion to the soil surface. Here we present and discuss a mathematical model that couples oxygen and soil water dynamics to biochemical reactions and gas transport to explore the major drivers of trace gas emission at daily time scale in unsaturated soils. The model accounts for trace gas emissions (CO2, and N2O from nitrification and denitrification), as well as for the competition for nitrate by denitrification and dissimilatory reduction of nitrate to ammonium (DNRA). Our results indicate that explicit modeling of oxygen dynamics is important when re-aeration is limited, such as under wet conditions, in particular for fine-textured soils. The balance of labile substrate, oxygen, and water availabilities explain the observed peaks in GHG emissions at moisture values around the soil field capacity. The timing of these peaks during a dry-down is delayed in fine-textured soils, due to the slower drying and limited gas exchange rates. In addition, N2O emissions may be limited by DNRA at high soil moisture. © 2013 Elsevier Ltd.

Duke Scholars

Published In

Advances in Water Resources

DOI

ISSN

0309-1708

Publication Date

October 1, 2013

Volume

62

Start / End Page

106 / 124

Related Subject Headings

  • Environmental Engineering
  • 4901 Applied mathematics
  • 4005 Civil engineering
  • 3707 Hydrology
  • 0907 Environmental Engineering
  • 0905 Civil Engineering
  • 0102 Applied Mathematics
 

Citation

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Rubol, S., Manzoni, S., Bellin, A., & Porporato, A. (2013). Modeling soil moisture and oxygen effects on soil biogeochemical cycles including dissimilatory nitrate reduction to ammonium (DNRA). Advances in Water Resources, 62, 106–124. https://doi.org/10.1016/j.advwatres.2013.09.016
Rubol, S., S. Manzoni, A. Bellin, and A. Porporato. “Modeling soil moisture and oxygen effects on soil biogeochemical cycles including dissimilatory nitrate reduction to ammonium (DNRA).” Advances in Water Resources 62 (October 1, 2013): 106–24. https://doi.org/10.1016/j.advwatres.2013.09.016.
Rubol S, Manzoni S, Bellin A, Porporato A. Modeling soil moisture and oxygen effects on soil biogeochemical cycles including dissimilatory nitrate reduction to ammonium (DNRA). Advances in Water Resources. 2013 Oct 1;62:106–24.
Rubol, S., et al. “Modeling soil moisture and oxygen effects on soil biogeochemical cycles including dissimilatory nitrate reduction to ammonium (DNRA).” Advances in Water Resources, vol. 62, Oct. 2013, pp. 106–24. Scopus, doi:10.1016/j.advwatres.2013.09.016.
Rubol S, Manzoni S, Bellin A, Porporato A. Modeling soil moisture and oxygen effects on soil biogeochemical cycles including dissimilatory nitrate reduction to ammonium (DNRA). Advances in Water Resources. 2013 Oct 1;62:106–124.
Journal cover image

Published In

Advances in Water Resources

DOI

ISSN

0309-1708

Publication Date

October 1, 2013

Volume

62

Start / End Page

106 / 124

Related Subject Headings

  • Environmental Engineering
  • 4901 Applied mathematics
  • 4005 Civil engineering
  • 3707 Hydrology
  • 0907 Environmental Engineering
  • 0905 Civil Engineering
  • 0102 Applied Mathematics